Technical Field
[0001] The present invention relates to the field of communications, in particular to a
method and a device for controlling power of a Cognitive Radio System (CRS).
Background
[0002] At present, spectrum resources are divided to various radio operators in a fixed
manner, wherein this manner specifies a corresponding frequency band, a used bandwidth
and a Radio Access Technology (RAT). With a continuous increase in a use frequency,
the number of users and a traffic amount of a radio network, spectrum resources for
radio communications become more and more scarce. Simultaneously, related observations
show that, in some time periods, a large amount of available spectrum resources are
idle. Therefore, a possibility exists that, in some areas, in some time periods, idle
spectrum resources can be borrowed for radio communications, in this way, the utilization
of spectrum resources can be improved effectively, and the scarcity of spectrum resources
can be relieved.
[0003] In the related technologies, when a CRS borrows idle spectrum resources, interference
may be caused to adjacent (adjacent channel or adjacent frequency channel) primary
user system or other CRSs, this is because a transmitter of the CRS generally has
out-of-band leakage during an energy radiation.
[0004] Fig. 1 is a schematic diagram of a spectrum mask according to an embodiment of the
present invention. As shown in Fig. 1, in the related technologies, a Television (TV)
system and a radio communication system generally have out-of-band leakage, wherein
the TV system comprises a Digital Video Broadcast (DVB), and the radio communication
system comprises a Global system for Mobile Communication (GSM), a Universal Mobile
Telecommunications System (UMTS) and a Long-Term Evolution (LTE).
[0005] Energy leaked to the adjacent channel causes interference to a TV system that is
working on the adjacent channel, as a result, a floor noise of the TV system is increased,
and the sensitivity of a receiver is influenced.
[0006] D1 (
US 2007/202867 A1) provides respective technical solutions; however, the above mentioned problem still
remains unsolved.
Summary
[0007] The invention is defined by the appended claims.
[0008] The present invention provides a method and a device for controlling power of a CRS,
which solve the above problem that a transmitter in a CRS generally has out-of-band
leakage during energy radiation to cause interference to a TV system that is working
on an adjacent channel.
[0009] According to one aspect of the present invention, a method for controlling power
of a CRS is provided.
[0010] The method for controlling power of a CRS according to the present invention comprises:
measuring a system parameter of a cognitive radio system and a system parameter of
a television (TV) system located in an adjacent channel of the cognitive radio system;
determining a maximum transmission power of the cognitive radio system according to
the system parameter of the cognitive radio system and the system parameter of the
TV system; and controlling an actual transmission power of the cognitive radio system
to be less than the maximum transmission power.
[0011] Preferably, according to the system parameter of the cognitive radio system and the
system parameter of the TV system, the maximum transmission power
PTX of the cognitive radio system is determined via a following formula:
PTX =
PRX_TV - RD/U - G +
ACIR + max{
MCL,PL(
d)}
-A, wherein
PRX_TV refers to a reception power of a place in which a receiver of the TV system locates,
RD/U refers to an expected useful-signal-to-interference-signal power ratio of the receiver
of the TV system, G refers to a sum of a gain of a transmitting antenna of the cognitive
radio system and a gain of a receiving antenna of the TV system, ACIR refers to an
adjacent channel interference ratio of a coexistence system formed by the cognitive
radio system and the TV system, MCL refers to a minimum coupling loss of the coexistence
system, d refers to a distance between the receiver of the TV system and a transmitter
of the cognitive radio system, PL(d) refers to a path loss between the cognitive radio
system and the TV system, and A refers to an effective output power activity factor
of the transmitting antenna of the cognitive radio system.
[0012] Preferably, the reception power
PRX_TV of the place in which the receiver of the TV system locates is determined via a following
formula:
PRX_TV = min{
PRX_TV_L,
PRX_TV_R}, wherein
PRX_TV_L refers to a TV reception power of a left adjacent channel of a TV white space occupied
by the cognitive radio system, and
PRX_TV_R refers to a TV reception power of a right adjacent channel of the TV white space
occupied by the cognitive radio system.
[0013] Preferably, when there is no signal of the TV system in the right adjacent channel,
PRX_TV =
PRX_TV_L; when there is no signal of the TV system in the left adjacent channel,
PRX_TV =
PRX_TV_R.
[0014] Preferably, the system parameter of the cognitive radio system comprises at least
one of: a gain of a transmitting antenna of the cognitive radio system, an adjacent
channel interference ratio of a coexistence system formed by the cognitive radio system
and the TV system, a minimum coupling loss of the coexistence system, and an effective
output power activity factor of the transmitting antenna of the cognitive radio system;
the system parameter of the TV system comprises at least one of: a gain of a receiving
antenna of the TV system, a reception power of a place in which a receiver of the
TV system locates, an expected useful-signal-to-interference-signal power ratio of
the receiver of the TV system, a distance between the receiver of the TV system and
a transmitter of the cognitive radio system, and a path loss between the cognitive
radio system and the TV system.
[0015] Preferably, the actual transmission power of the cognitive radio system is controlled
to be less than the maximum transmission power in at least one of the following ways:
increase of filters, increase of spectrum isolation belts, and increase of a space
interval between a receiver and a transmitter.
[0016] Preferably, after controlling the actual transmission power of the cognitive radio
system to be less than the maximum transmission power, the method further comprises:
determining a maximum value of an interference power received by the cognitive radio
system; judging whether the maximum value is less than a maximum interference power
allowable in the cognitive radio system; if it is judged that the maximum value is
less than the maximum interference power allowable in the cognitive radio system,
determining that the cognitive radio system and the TV system coexist.
[0017] Preferably, the maximum value
I of the interference power received by the cognitive radio system is determined via
a following formula:
I = PTX_TV +
G +
ATV -
ACIRTV -
PL(
d), wherein
PTX_TV refers to a transmission power of a transmitter of the TV system, G refers to a sum
of a gain of a transmitting antenna of the TV system and a gain of a receiving antenna
of the cognitive radio system,
ATV refers to an activity factor,
ACIRTV refers to an adjacent channel leakage ratio, d refers to a distance between the transmitter
of the TV system and a receiver of the cognitive radio system, and PL(d) refers to
a path loss between the cognitive radio system and the TV system.
[0018] Preferably, if it is judged that the maximum value is not less than the maximum interference
power allowable in the cognitive radio system, an out-of-band leakage of the TV system
is reduced in at least one of the following ways: increase of filters, increase of
spectrum isolation belts, increase of a space interval between a receiver and a transmitter,
and pre-distortion.
[0019] According to another aspect of the present invention, a device for controlling power
of a cognitive radio system is provided.
[0020] The device for controlling power of a cognitive radio system according to the present
invention comprises: a measurement module, configured to measure a system parameter
of a cognitive radio system and a system parameter of a TV system located in an adjacent
channel of the cognitive radio system; a determination module, configured to determine
a maximum transmission power of the cognitive radio system according to the system
parameter of the cognitive radio system and the system parameter of the TV system;
and a control module, configured to control an actual transmission power of the cognitive
radio system to be less than the maximum transmission power.
[0021] Preferably, the determination module is further configured to determine the maximum
transmission power
PTX of the cognitive radio system via a following formula:
PTX =
PRX_TV - RD/U - G +
ACIR + max{
MCL,
PL(
d)}
- A, wherein
PRX_TV refers to a reception power of a place in which a receiver of the TV system locates,
RD/U refers to an expected useful-signal-to-interference-signal power ratio of the receiver
of the TV system, G refers to a sum of a gain of a transmitting antenna of the cognitive
radio system and a gain of a receiving antenna of the TV system, ACIR refers to an
adjacent channel interference ratio of a coexistence system formed by the cognitive
radio system and the TV system, MCL refers to a minimum coupling loss of the coexistence
system, d refers to a distance between the receiver of the TV system and a transmitter
of the cognitive radio system, PL(d) refers to a path loss between the cognitive radio
system and the TV system, and A refers to an effective output power activity factor
of the transmitting antenna of the cognitive radio system.
[0022] Through the present invention, the maximum transmission power of the CRS is determined
according to a practical situation of the TV system that is working on the adjacent
channel, and the actual transmission power of the CRS is controlled to be less than
the maximum transmission power, therefore, the problem that the transmitter in the
CRS generally has out-of-band leakage during the energy radiation to cause interference
to the TV system that is working on the adjacent channel is solved, interference to
the TV system can be reduced maximally, so that the sensitivity of the receiver inside
the TV system is guaranteed.
Brief Description of the Drawings
[0023] Drawings, provided for further understanding of the present invention and forming
a part of the specification, are used to explain the present invention together with
embodiments of the present invention rather than to limit the present invention, wherein:
Fig. 1 is a schematic diagram of a spectrum mask according to an embodiment of the
present invention;
Fig. 2 is a flow chart of a method for controlling power of a CRS according to an
embodiment of the present invention;
Fig. 3 is a flow chart of measurement and control according to an embodiment of the
present invention;
Fig. 4 is a diagram of a coexistence scene according to an embodiment of the present
invention;
Fig. 5 is a flow chart of transmission of a base station (BS) according to an embodiment
of the present invention;
Fig. 6 is a structure block diagram of a device for controlling power of a CRS according
to an embodiment of the present invention.
Detailed Description of the Embodiments
[0024] It should be noted that, embodiments in the application and features in the embodiments
may be combined if not conflicted. The present invention will be described in details
below with reference to drawings and embodiments.
[0025] For a TV system (for example, a DVB), a general transmission spectrum mask is shown
in Fig. 1. From this mask, it can be known that spectrum leakage exists generally,
and this leakage will influence a TV system that is working on an adjacent channel.
The embodiments of the present invention also can be used in a radio communication
system (for example, GSM/UMTS/LTE).
[0026] An embodiment of the present invention provides a method for controlling power of
a CRS. Fig. 2 is a flow chart of a method for controlling power of a CRS according
to the embodiment of the present invention. The method for controlling power of a
CRS comprises the following steps S202 to S206.
[0027] Step S202: A system parameter of a CRS and a system parameter of a TV system located
in an adjacent channel of the CRS are measured.
[0028] Step S204: A maximum transmission power of the CRS is determined according to the
system parameter of the CRS and the system parameter of the TV system.
[0029] Step S206: An actual transmission power of the CRS is controlled to be less than
the maximum transmission power.
[0030] In the related technologies, a transmitter in the CRS generally has out-of-band leakage
during energy radiation to cause interference to the TV system that is working on
the adjacent channel. In the embodiment of the present invention, the maximum transmission
power of the CRS is determined in consideration of a practical situation of the TV
system that is working on the adjacent channel, and the actual transmission power
of the CRS is controlled to be less than the maximum transmission power, therefore,
interference to the TV system can be reduced maximally, so that the sensitivity of
the receiver inside the TV system is guaranteed.
[0031] It should be noted that, the system parameter of the CRS and the system parameter
of the TV system comprise but not limited to energy leakage out of a working-band.
[0032] Preferably, according to the system parameter of the CRS and the system parameter
of the TV system, the maximum transmission power
PTX of the CRS is determined via the following formula:

wherein
PRX_TV refers to a reception power of a place in which a receiver of the TV system locates,
RD/U refers to an expected useful-signal-to-interference-signal power ratio of the receiver
of the TV system, G refers to a sum of a gain of a transmitting antenna of the CRS
and a gain of a receiving antenna of the TV system, ACIR refers to an adjacent channel
interference ratio of a coexistence system formed by the CRS and the TV system (defined
as a ratio of a transmission power of an interfering system (herein, regarded as the
CRS) to an interference power received by the receiver of an interfered system (herein,
regarded as the TV system)), MCL refers to a minimum coupling loss of the coexistence
system, d refers to a distance between the receiver of the TV system and the transmitter
of the CRS, PL(d) refers to a path loss between the CRS and the TV system, and A refers
to an effective output power activity factor of the transmitting antenna of the CRS.
[0033] The meaning and derivation process of the above formula will be described in details
below.
[0034] For a TV receiver, the maximum allowable interference power is
IMAX ;

wherein
RD/U refers to the expected useful-signal-to-interference-signal power ratio of a TV receiver,
and
PRX_TV refers to the reception power of the place in which the TV receiver locates.
[0035] Besides, assumed that an in-band transmission power of a CRS transmitter is
PTX, then a leakage power of the adjacent channel is I:

wherein G refers to a sum of a gain of the CRS transmitting antenna and a gain of
the TV receiving antenna, ACIR refers to an adjacent channel interference ratio, MCL
refers to a minimum coupling loss, PL refers to a path loss and is a function of distance
d, d refers to a distance between the TV receiver and the CRS transmitter, and max{●}
refers to select a maximum value. When the TV receiver and the CRS transmitter share
a station, MCL is selected; when the TV receiver and the CRS transmitter do not share
a station, PL(d) is selected.
[0036] In the above, ACIR also can be expressed as:

wherein Adjacent Channel Leakage Ratio (ACLR) refers to an adjacent channel leakage
ratio of the CRS transmitter, and Adjacent Channel Selectivity (ACS) refers to an
adjacent channel selectivity of the TV receiver.
[0037] Considering that the adjacent channel leakage power
I should be less than the maximum allowable interference power
IMAX, therefore, in combination with formula (1) and formula (2), the maximum allowable
transmission power
PTX of the CRS can be obtained as:

[0038] Practically, an effective output power of the transmitting antenna should also take
the activity factor A into consideration; therefore the calculation formula in the
embodiment of the present invention can be obtained as:

[0039] Formula (4) is the maximum allowable transmission power of the CRS, which will not
cause interference to a TV signal receiver of the adjacent channel. It should be noted
that, whether the transmitter of the CRS is a transmitter of a Base station (BS) or
a transmitter of a User Equipment (UE) is not distinguished herein. In a downlink
of the CRS, influence to the TV receiver of the adjacent channel from the BS transmitter
of the CRS needs to be considered, at this time, ACLR refers to the adjacent channel
leakage ratio of the BS transmitter, ACS refers to the adjacent channel selectivity
of the TV receiver, and the antenna gain takes the antenna gain of the BS of the CRS
and that of the TV receiving system into consideration. In an uplink of the CRS, influence
to the TV receiver of the adjacent channel from the UE transmitter of the CRS needs
to be considered, at this time, ACLR refers to the adjacent channel leakage ratio
of the UE transmitter, ACS refers to the adjacent channel selectivity of the TV receiver,
and the antenna gain takes the antenna gain of the UE of the CRS and that of the TV
receiving system into consideration.
[0040] It should be noted that, the above considerations are in allusion to interference
to the TV receiver of the adjacent channel from the CRS. If the transmission power
of the CRS is guaranteed not to be greater than
PTX, the CRS can coexist with the TV system.
[0041] Preferably, the reception power
PRX_TV of the place in which the receiver of the TV system locates is determined via a following
formula:
PRX_TV = min{
PRX_TV_L,
PRX_TV_R}, wherein
PRX_TV_L refers to a TV reception power of a left adjacent channel of a TV white space occupied
by the cognitive radio system, and
PRX_TV_R refers to a TV reception power of a right adjacent channel of the TV white space
occupied by the cognitive radio system. Preferably, when there is no signal of the
TV system in the right adjacent channel,
PRX_TV =
PRX_TV_L ; when there is no signal of the TV system in the left adjacent channel,
PRX_TV =
PRX_TV_R.
[0042] PRX_TV in the preferable embodiment can be calculated via the following formula (5):

wherein
PRX_TV_L refers to a TV reception power of a left adjacent channel of a Television White Space
(TVWS) occupied by the CRS,
PRX_TV_R refers to a TV reception power of a right adjacent channel of the TVWS occupied by
the CRS, and min{●} refers to select a minimum value. When there is no TV signal in
the right adjacent channel,
PRX_TV is equal to value (a); when there is no TV signal in the left adjacent channel,
PRX_TV is equal to value (c); when there are TV signals in both left and right adjacent
channels,
PRX_TV is equal to value (b).
[0043] Preferably, the system parameter of the CRS comprises at least one of the following
parameters: a gain of a transmitting antenna of the CRS, an adjacent channel interference
ratio of the CRS, a minimum coupling loss of the CRS, and an effective output power
activity factor of the transmitting antenna of the CRS; the system parameter of the
TV system comprises at least one of the following parameters: a gain of a receiving
antenna of the TV system, a reception power of the place in which the receiver of
the TV system locates, an expected useful-signal-to-interference-signal power ratio
of the receiver of the TV system, a distance between the receiver of the TV system
and the transmitter of the CRS, and a path loss between the CRS and the TV system.
[0044] Preferably, the actual transmission power of the cognitive radio system is controlled
to be less than the maximum transmission power in at least one of the following ways:
increase of filters, increase of spectrum isolation belts, and increase of a space
interval between a receiver and a transmitter.
[0045] Preferably, after controlling the actual transmission power of the cognitive radio
system to be less than the maximum transmission power, a maximum value of an interference
power received by the cognitive radio system is determined; it is judged whether the
maximum value is less than a maximum interference power allowable in the cognitive
radio system; if it is judged that the maximum value is less than the maximum interference
power allowable in the cognitive radio system, it is determined that the cognitive
radio system and the TV system coexist.
[0046] In the preferable embodiment, influence to the CRS from the TV system is also considered,
so as to guarantee a Quality of Service (QoS) of the CRS, thus to really guarantee
the coexistence of the CRS and the TV system.
[0047] According to a specific CRS (for example, GSM/UMTS/LTE) or corresponding products
of the specific CRS, the maximum allowable interference power I
MAX_CR can be looked up from relevant tables or calculated. For example, in accordance with
criterions: calculation is performed according to a sensitivity loss (i.e., interference
ratio) of 0.8dB for a BS and according to a sensitivity loss of 3dB for a UE. A floor
noise of an Evolved-UMTS Terrestrial Radio Access (E-UTRAN) 10MHz system is -99dBm,
so the maximum allowable interference power is -106dBm. A floor noise of an E-UTRA
5MHz system is -102dBm, so the maximum allowable interference power is -109dBm.
[0048] The received interference power I is compared with the allowable interference power
I
MAX_CR.
[0049] If I<I
MAX_CR, the CRS can coexist with the TV system in the adjacent channel;
otherwise, according to the above two situations, interference to the TV system from
the CRS and interference to the CRS from the TV system are considered. Only in a case
that both interference powers meet relevant requirements, the CRS can coexist with
the TV system.
[0050] Preferably, the maximum value
I of the interference power received by the CRS is determined via the following formula:

wherein
PTX_TX refers to a transmission power of a transmitter of the TV system, G refers to a sum
of a gain of a transmitting antenna of the TV system and a gain of a receiving antenna
of the cognitive radio system,
ATV refers to an activity factor,
ACIRTV refers to an adjacent channel leakage ratio, d refers to a distance between the transmitter
of the TV system and a receiver of the cognitive radio system, and PL(d) refers to
a path loss between the cognitive radio system and the TV system.
[0051] It should be noted that, the ACS of the CRS receiver is different for the BS and
the UE, and the specific numerical values can be referred to related protocols or
practical products. Simultaneously, the antenna gain G is the sum of the gain of the
transmitting antenna of the TV system and the gain of the receiving antenna of the
CRS, similarly, for the CRS receiver, the antenna gains of the BS and the UE are different.
[0052] Preferably, if it is judged that the maximum value is not less than the maximum interference
power allowable in the cognitive radio system, an out-of-band leakage of the TV system
is reduced in at least one of the following ways: increase of filters, increase of
spectrum isolation belts, increase of a space interval between a receiver and a transmitter,
and pre-distortion.
[0053] Preferably, after determining that the CRS can coexist with the TV system, the CRS
performs spectrum adjustment and enters a corresponding TVWS for radio communications.
[0054] It should be noted that, practically, for the TVWS, more than one CRS may need it,
and the above steps can meet the requirements when only one CRS needs to borrow the
TVWS. However, when multiple CRSs need to borrow the TVWS simultaneously, there is
a problem of spectrum etiquette, that is, each CRS must employ negotiation means and
utilize some rules to determine the CRS that specifically borrows the TVWS.
[0055] In the embodiments of the present invention, the interference power between different
systems, particularly between the TV system and the radio communication system, can
be measured effectively, and then the interference power is real-time controlled dynamically
and automatically according to the corresponding interference, so as to achieve the
purpose of coexistence of two systems.
[0056] The present invention also provides a preferable embodiment that combines technical
solutions of the above plurality of preferable embodiments. The preferable embodiment
will be described in details with reference to Fig. 3 to Fig. 5.
[0057] Fig. 3 is a flow chart of measurement and control according to an embodiment of the
present invention, comprising three steps: measurement, calculation and adjustment.
Fig. 4 is a schematic diagram of a coexistence scene according to an embodiment of
the present invention. In the scene, one transmitter of the TV system, one 3GPP radio
communication BS and a plurality of users of the TV system and the radio communication
system are shown.
[0058] The operating steps will be explained in details below.
[0059] Step S302: An interference power
I1 to a receiver of the TV system from the CRS is measured.
[0060] Practically, this step is provided to measure
PRX_TV, that is, to measure a radiation power of the CRS transmitter at the TV receiver.
Due to the uncertainty of a geographic location of the TV receiver and the lack of
any report device in the TV receiver, it is difficult to measure
PRX_TX. As known, the maximum interference to the TV receiver from the CRS transmitter occurs
when the TV receiver locates within an adjacent area of the CRS transmitter, for example,
the TV transmitter locates within 50m of the CRS transmitter.
[0061] Herein, received signal strength can be obtained via the following methods:
□ dedicated devices with sensibility capability are used for measuring a designated
channel, and a measured value is reported to the BS of the radio communication system;
□ a UE (if it is available and has the corresponding measurement capability) within
the adjacent area of the BS is used for measuring the designated channel, and the
measured value is reported to the BS that informs the UE of performing the measurement;
□ the BS couples its own transmission power at the antenna transmitting end, and feeds
back to the base band processing unit.
[0062] Step S304: A maximum allowable transmission power
PTX of the CRS transmitter is calculated according to formula (4), and an actual transmission
power P is adjusted according to the
PTX, so as to meet P<
PTX.
[0063] To make the discussion convenient, formula (4) is mentioned again herein:

[0064] Attention should be paid that formula (4) is processed in a base band processing
unit in the radio communication system. Herein, parameters: R
D/U, ACS of ACIR, and the receiving antenna gain in G, are obtained by the BS from a
database. The information in the database is obtained from the report of the TV system.
Besides, according to a blind zone range of the BS, the BS obtains a minimum distance
between a place beyond the blind zone and the BS, so as to calculate MCL and PL(d).
The transmission gain of the BS antenna, the activity factor A and ACLR can be obtained
via a parameter storage unit of the BS or by accessing a database. The database is
stored with various parameters of the radio communication system (comprising BS) and
the TV system (comprising a TV transmitter and TV receivers, the types of which are
as many as possible). For example, for information about the TV system contained in
the database (television database), TV operators or third party operators are responsible
for data recording, management and daily maintenance. The contents of the information
comprise use situations of TV spectrum (frequency channel) of the TV operator in a
local area or in a plurality of areas comprising the local area, i.e., ○,1 a state
of a spectrum (frequency channel) that is being used, comprising but not limited to:
a channel number, a bandwidth, a possible duration, a D/U requirement (R
D/U is an expected useful-signal-to-interference-signal power ratio of the TV receiver),
a spectrum mask, a coverage range, an isolation belt, and other information; 0,2 a
state of a spectrum (frequency channel) that is not used, comprising but not limited
to: a channel number, a working bandwidth, and other information.
[0065] A physical connection between the BS and the database and a physical connection between
the TV BS and the database is realized by means of wire or wireless connection, and
a logic transmission protocol, such as IP protocol, may be employed for communications.
[0066] Fig. 5 is a flow chart of transmission of a BS according to an embodiment of the
present invention.
[0067] When the obtained transmission power
PTX of the BS meets a QoS of the radio communication system, the BS can obtain the result
by measuring (comprising but not limited to) a Bit Error Rate (BER) or a BLock Error
Rate (BLER) in the system, and the BS performs transmission according to the transmission
power
PTX.
[0068] When the obtained transmission power
PTX of the BS cannot meet the QoS of the radio communication system, the BS adjusts the
transmission power
PTX and adds means which comprising but not limited to a digital pre-distortion algorithm,
to change the ACLR of the BS transmitter, further to change the ACIR, so as to meet
the QoS of the radio communication system.
[0069] When the addition of the digital pre-distortion algorithm still cannot meet the requirement,
the ACLR can be improved by an external filter to further change the ACIR. Herein,
one possibility is that the external filter always exists, and the BS can determine
ON/OFF of the filter by means of control.
[0070] When all the above methods do not work, a method of changing a working frequency
channel can be tried, for example, a spectrum space between a CRS working frequency
channel and a TV working frequency channel is increased to meet the QoS requirement
of the radio communication system.
[0071] Step S306: An interference power I
2 to the CRS receiver from the TV system is measured, and a maximum allowable interference
power I
MAX_CR of the CRS is obtained according to a protocol or a product.
[0072] To make the discussion convenient, formula (6) is mentioned again herein:

[0073] Herein, the interference power I
2 is calculated according to formula (6). In the above, the BS obtains the transmission
power
PTX_TV of the TV transmitter, the transmission gain, the activity factor
ATV and the ACLR of the transmitter (the wanted
ACIRTV is obtained from the ACLR and the ACS of the BS mentioned below according to formula
(4)) by accessing the database (see Fig. 4). Besides, the BS also should obtain geographic
location coordinates (comprising longitude and latitude) of the TV transmitter through
the database, so as to determine the calculation of PL(d). Besides, the BS and the
UE also should obtain their own geographic location coordinates (comprising longitude
and latitude) through a Global Positioning System (GPS) or some locating algorithms
or the database.
[0074] Usually, the ACS value of the BS is relatively large, and according to a property
of the ACIR, the ACS of the BS may be not considered when the ACIR is estimated, but
the ACS of the BS should be considered when the ACIR is calculated precisely.
[0075] According to a specific CRS (for example, GSM/UMTS/LTE) or corresponding products
thereof, the maximum allowable interference power I
MAX_CR can be looked up from relevant tables or calculated. For example, in accordance with
criterions: calculation is performed according to a sensitivity loss (i.e., interference
ratio) of 0.8dB for the BS and a sensitivity loss of 3dB for the UE. A floor noise
of an Evolved-UMTS Terrestrial Radio Access (E-UTRAN) 10MHz system is -99dBm, so the
maximum allowable interference power is -106dBm; the floor noise of an E-UTRA 5MHz
system is -102dBm, so the maximum allowable interference power is -109dBm. The received
interference power I is compared with the allowable interference power I
MAX_CR.
[0076] Step S308: It is judged whether I
2 is less than I
MAX_CR. if so, jump to step S312, otherwise, enter step S310.
[0077] If I
2 is less than I
MAX_CR. it is indicated that interference caused by the TV system to the CRS receiver in
the adjacent channel will not influence the normal working of the CRS receiver. If
I
2 is greater than I
MAX_CR, it is indicated that interference caused by the TV system to the CRS receiver in
the adjacent channel has influenced the normal working of the CRS receiver.
[0078] Step S310: It is ensured that I
2 is less than I
MAX_CR by one or combination of the following ways, for example, increase of filters, increase
of spectrum isolation belts, increase of a space interval between the receiver and
the transmitter and pre-distortion, so as to reduce the out-of-band leakage of the
TV system.
[0079] If the transmission power of the transmitter of the TV system is controllable and
base band processing is available, the ACLR of the transmitter of the TV system can
be changed by adjusting the transmission power of the transmitter of the TV system
and employing means comprising but not limited to a digital pre-distortion algorithm,
further the ACIR can be changed, so as to meet the QoS of the radio communication
system.
[0080] When the addition of the digital pre-distortion algorithm still cannot meet the requirement,
the ACLR can be improved by an external filter to further change the ACIR. Herein,
one possibility is that the external filter always exists, and the BS can determine
ON/OFF of the filter by means of control.
[0081] When all the above methods do not work, a method of changing a working frequency
channel can be tried, for example, a spectrum space between a CRS working frequency
channel and a TV working frequency channel is increased to meet the QoS requirement
of the radio communication system.
[0082] Step S312: The CRS performs spectrum adjustment and enters a corresponding TVWS for
radio communications.
[0083] Practically, for the TVWS, more than one CRS may need it, and the above steps can
meet the requirements when only one CRS needs to borrow the TVWS. However, when multiple
CRSs need to borrow the TVWS simultaneously, there is a problem of spectrum etiquette,
that is, each CRS must employ negotiation means and utilize some rules to determine
the CRS that specifically borrows the TVWS. Contents in this part exceed the description
range of the specification and will not be discussed here. Besides, the embodiment
does not involve a case in which the CRS and the TV system occupy a same channel and
a case in which different CRSs occupy a same channel.
[0084] It should be noted that, steps shown in the flow charts in the drawings may be executed
in a computer system, such as a group of computer executable instructions; furthermore,
although a logic sequence is shown in the flow charts, in some cases, the shown or
described steps may be executed in an order different from that shown herein.
[0085] An embodiment of the present invention provides a device for controlling power of
a CRS, which can be used for implementing the method for controlling power of a CRS.
Fig. 6 is a structure block diagram of a device for controlling power of a CRS according
to the embodiment of the present invention. The device comprises a measurement module
62, a determination module 64 and a control module 66. The device will be described
in details below.
[0086] The measurement module 62 is configured to measure a system parameter of a CRS and
a system parameter of a TV system located in an adjacent channel of the CRS. The determination
module 64 is coupled with the measurement module 62 and configured to determine a
maximum transmission power of the CRS according to the system parameter of the CRS
and the system parameter of the TV system measured by the measurement module 62. The
control module 66 is coupled with the determination module 64 and configured to control
an actual transmission power of the CRS to be less than the maximum transmission power
determined by the determination module 64.
[0087] In the related technologies, a transmitter in the CRS generally has out-of-band leakage
during energy radiation to cause interference to the TV system that is working on
the adjacent channel. In the embodiment of the present invention, the maximum transmission
power of the CRS is determined in consideration of a practical situation of the TV
system that is working on the adjacent channel, and the actual transmission power
of the CRS is controlled to be less than the maximum transmission power, therefore,
interference to the TV system can be reduced maximally, so that the sensitivity of
the receiver inside the TV system is guaranteed.
[0088] It should be noted that, the system parameter of the CRS and the system parameter
of the TV system comprise but not limited to energy leakage out of a working-band.
[0089] Preferably, the determination module is further configured to determine the maximum
transmission power
PTX of the CRS via the following formula:

wherein
PRX_TV refers to a reception power of a place in which a receiver of the TV system locates,
RD/U refers to an expected useful-signal-to-interference-signal power ratio of the receiver
of the TV system, G refers to a sum of a gain of a transmitting antenna of the CRS
and a gain of a receiving antenna of the TV system, ACIR refers to an adjacent channel
interference ratio of a coexistence system formed by the CRS and the TV system (defined
as a ratio of a transmission power of an interfering system (herein, regarded as the
CRS) to an interference power received by the receiver of an interfered system (herein,
regarded as the TV system)), MCL refers to a minimum coupling loss of the coexistence
system, d refers to a distance between the receiver of the TV system and the transmitter
of the CRS, PL(d) refers to a path loss between the CRS and the TV system, and A refers
to an effective output power activity factor of the transmitting antenna of the CRS.
[0090] It should be noted that, in the embodiments of the device, the device for controlling
power of a CRS is corresponding to the embodiments of the method, and the specific
implementation processes have been described in details in the embodiments of the
method and will not be described again herein.
[0091] In conclusion, according to the embodiments of the present invention, a method and
a device for controlling power of a CRS are provided. By determining the maximum transmission
power of the CRS and controlling the actual transmission power of the CRS to be less
than the maximum transmission power, the problem that the transmitter of the CRS generally
has out-of-band leakage during the energy radiation to cause interference to the TV
system that is working on the adjacent channel is solved, interference to the TV system
can be reduced maximally, so that the sensitivity of the receiver inside the TV system
is guaranteed.
[0092] Obviously, those skilled in the art shall understand that the above-mentioned modules
and steps of the present invention can be realized by using general purpose calculating
device, can be integrated in one calculating device or distributed on a network which
consists of a plurality of calculating devices. Alternatively, the modules and the
steps of the present invention can be realized by using the executable program code
of the calculating device. Consequently, they can be stored in the storing device
and executed by the calculating device, or they are made into integrated circuit module
respectively, or a plurality of modules or steps thereof are made into one integrated
circuit module. In this way, the present invention is not restricted to any particular
hardware and software combination.
[0093] The descriptions above are only the preferable embodiment of the present invention,
which are not used to restrict the present invention. For those skilled in the art,
the present invention may have various changes and variations. Any amendments, equivalent
substitutions, improvements, etc. within the principle of the present invention are
all included in the scope of the protection of the present invention.
1. A method for controlling power of a cognitive radio system, comprising:
measuring a system parameter of a cognitive radio system and a system parameter of
a television (TV) system located in an adjacent channel of the cognitive radio system
(S202);
determining a maximum transmission power of the cognitive radio system according to
the system parameter of the cognitive radio system and the system parameter of the
TV system (S204); and
controlling an actual transmission power of the cognitive radio system to be less
than the maximum transmission power (S206);
wherein after controlling the actual transmission power of the cognitive radio system
to be less than the maximum transmission power (S206), the method further comprises:
determining a maximum value of an interference power received by the cognitive radio
system;
judging whether the maximum value is less than a maximum interference power allowable
in the cognitive radio system;
if it is judged that the maximum value is less than the maximum interference power
allowable in the cognitive radio system, determining that the cognitive radio system
and the TV system coexist.
2. The method according to claim 1,
characterized in that according to the system parameter of the cognitive radio system and the system parameter
of the TV system, the maximum transmission power
PTX of the cognitive radio system is determined via a following formula:

wherein
PRX_TV refers to a reception power of a place in which a receiver of the TV system locates,
RD/U refers to an expected 21 P59914 useful-signal-to-interference-signal power ratio
of the receiver of the TV system, G refers to a sum of a gain of a transmitting antenna
of the cognitive radio system and a gain of a receiving antenna of the TV system,
ACIR refers to an adjacent channel interference ratio of a coexistence system formed
by the cognitive radio system and the TV system, MCL refers to a minimum coupling
loss of the coexistence system, d refers to a distance between the receiver of the
TV system and a transmitter of the cognitive radio system, PL(d) refers to a path
loss between the cognitive radio system and the TV system, and A refers to an effective
output power activity factor of the transmitting antenna of the cognitive radio system.
3. The method according to claim 2,
characterized in that the reception power
PRX_TV of the place in which the receiver of the TV system locates is determined via a following
formula:

wherein
PRX_TV_L refers to a TV reception power of a left adjacent channel of a TV white space occupied
by the cognitive radio system, and
PRX_TV_R refers to a TV reception power of a right adjacent channel of the TV white space
occupied by the cognitive radio system.
4. The method according to claim 3, characterized in that when there is no signal of the TV system in the right adjacent channel, PRX_RV = PRX_TV_L; when there is no signal of the TV system in the left adjacent channel, PRX_TV = PRX_TV_R.
5. The method according to any one of claims 1 to 4,
characterized in that the system parameter of the cognitive radio system comprises at least one of:
a gain of a transmitting antenna of the cognitive radio system, an adjacent channel
interference ratio of a coexistence system formed by the cognitive radio system and
the TV system, a minimum coupling loss of the coexistence system, and an effective
output power activity factor of the transmitting antenna of the cognitive radio system;
the system parameter of the TV system comprises at least one of:
a gain of a receiving antenna of the TV system, a reception power of a place in which
a receiver of the TV system locates, an expected useful-signal-to-interference-signal
power ratio of the receiver of the TV system, a distance between the receiver of the
TV system and a transmitter of the cognitive radio system, and a path loss between
the cognitive radio system and the TV system.
6. The method according to any one of claims 1 to 4,
characterized in that the actual transmission power of the cognitive radio system is controlled to be less
than the maximum transmission power in at least one of the following ways:
increase of filters, increase of spectrum isolation belts, and increase of a space
interval between a receiver and a transmitter.
7. The method according to claim 1,
characterized in that the maximum value
I of the interference power received by the cognitive radio system is determined via
a following formula:

wherein
PTX_TV refers to a transmission power of a transmitter of the TV system, G refers to a sum
of a gain of a transmitting antenna of the TV system and a gain of a receiving antenna
of the cognitive radio system,
ATV refers to an activity factor,
ACIRTV refers to an adjacent channel leakage ratio, d refers to a distance between the transmitter
of the TV system and a receiver of the cognitive radio system, and PL(d) refers to
a path loss between the cognitive radio system and the TV system.
8. The method according to claim 1,
characterized in that if it is judged that the maximum value is not less than the maximum interference
power allowable in the cognitive radio system, an out-of-band leakage of the TV system
is reduced in at least one of the following ways:
increase of filters, increase of spectrum isolation belts, increase of a space interval
between a receiver and a transmitter, and a pre-distortion.
9. A device for controlling power of a cognitive radio system, comprising:
a measurement module (62), configured to measure a system parameter of a cognitive
radio system and a system parameter of a TV system located in an adjacent channel
of the cognitive radio system;
a determination module (64), configured to determine a maximum transmission power
of the cognitive radio system according to the system parameter of the cognitive radio
system and the system parameter of the TV system; and
a control module (66), configured to control an actual transmission power of the cognitive
radio system to be less than the maximum transmission power;
wherein the control module (66) is further configured, after controlling the actual
transmission power of the cognitive radio system to be less than the maximum transmission
power, to determine a maximum value of an interference power received by the cognitive
radio system; to judge whether the maximum value is less than a maximum interference
power allowable in the cognitive radio system; if it is judged that the maximum value
is less than the maximum interference power allowable in the cognitive radio system,
to determine that the cognitive radio system and the TV system coexist.
10. The device according to claim 9,
characterized in that the determination module (64) is further configured to determine the maximum transmission
power
PTX of the cognitive radio system via a following formula:

wherein
PRX_TV refers to a reception power of a place in which a receiver of the TV system locates,
RD/U refers to an expected useful-signal-to-interference-signal power ratio of the receiver
of the TV system, G refers to a sum of a gain of a transmitting antenna of the cognitive
radio system and a gain of a receiving antenna of the TV system, ACIR refers to an
adjacent channel 24 P59914 interference ratio of a coexistence system formed by the
cognitive radio system and the TV system, MCL refers to a minimum coupling loss of
the coexistence system, d refers to a distance between the receiver of the TV system
and a transmitter of the cognitive radio system, PL(d) refers to a path loss between
the cognitive radio system and the TV system, and A refers to an effective output
power activity factor of the transmitting antenna of the cognitive radio system.
1. Verfahren zur Steuerung der Leistung eines kognitiven Radiosystems, umfassend:
das Messen eines Systemparameters eines kognitiven Radiosystems und eines Systemparameters
eines Fernseh-(TV)-Systems, angeordnet in einem Nebenkanal des kognitiven Radiosystems
(S202);
das Bestimmen einer maximalen Übertragungsleistung des kognitiven Radiosystems gemäß
dem Systemparameter des kognitiven Radiosystems und des Systemparameters des TV-Systems
(S204);
das Steuern einer tatsächlichen Übertragungsleistung des kognitiven Radiosystems,
sodass diese weniger ist als die maximale Übertragungsleistung (S206);
wobei, nach dem Steuern der effektiven Übertragungsleistung des kognitiven Radiosystems,
sodass diese weniger als die maximale Übertragungsleistung (S206) ist, das Verfahren
ferner umfasst:
das Bestimmen eines Höchstwertes einer Interferenzleistung, empfangen von dem kognitiven
Radiosystem;
das Beurteilen, ob der Höchstwert weniger ist als eine erlaubte maximale Interferenzleistung
in dem kognitiven Radiosystem;
wenn geurteilt wird, dass der Höchstwert weniger als die erlaubte maximale Interferenzleistung
in dem kognitiven Radiosystem ist, das Bestimmen, dass das kognitive Radiosystem und
das TV-System koexistieren.
2. Verfahren nach Anspruch 1,
dadurch gekennzeichnet, dass gemäß dem Systemparameter in dem kognitiven Radiosystem und dem Systemparameter des
TV-Systems die maximale Übertragungsleistung
PTX des kognitiven Radiosystems durch folgende Formel bestimmt wird:

wobei
PRX_TV auf eine Empfangsleistung eines Ortes verweist, in dem sich ein Empfänger des TV-Systems
befindet,
RD/U auf ein erwartetes Nutzsignal-zu-Uberlagerungssignal Leistungsverhältnis des Empfängers
des TV-Systems verweist, G auf eine Summe einer Verstärkung einer übertragenden Antenne
des kognitiven Radiosystems und einer Verstärkung einer empfangenden Antenne des TV-Systems
verweist, ACIR auf ein Nebenkanal-Interferenzverhältnis eines Koexistenzsystems, gebildet
von dem kognitiven Radiosystem und dem TV-System, verweist, MCL auf einen minimalen
Kopplungsverlust des Koexistenzsystems verweist, d auf eine Entfernung zwischen dem
Empfänger des TV-Systems und einem Sender des kognitiven Radiosystems verweist, PL(d)
auf einen Wegverlust zwischen dem kognitiven Radiosystem und dem TV-System verweist
und A auf einen effektiven Ausgangsleistungsaktivitätsfaktor der übertragenden Antenne
des kognitiven Radiosystems verweist.
3. Verfahren nach Anspruch 2,
dadurch gekennzeichnet, dass die Empfangsleistung
PRX_TV des Ortes, an dem sich der Empfänger des TV-Systems befindet, durch folgende Formel
bestimmt wird:

wobei
PRX_TV_L auf eine TV-Empfangsleistung eines linken Nebenkanals einer von dem kognitiven Radiosystem
belegten TV-Funklücke verweist und
PRX_TV_R auf eine TV-Empfangsleistung eines rechten Nebenkanals der von dem kognitiven Radiosystem
belegten TV-Funklücke verweist.
4. Verfahren nach Anspruch 3, dadurch gekennzeichnet, dass, wenn kein Signal des TV-Systems in dem rechten Nebenkanal ist, PRX_TV = PRX_TV_L; wenn kein Signal des TV-Systems in dem linken Nebenkanal ist, PRX_TV_ = PRX_TV_R.
5. Verfahren nach einem der Ansprüche 1 bis 4,
dadurch gekennzeichnet, dass der Systemparameter des kognitiven Radiosystems mindestens eines der Folgenden umfasst:
eine Verstärkung einer übertragenden Antenne des kognitiven Radiosystems, ein Nebenkanal-Interferenzverhältnis
eines Koexistenzsystems, gebildet von dem kognitiven Radiosystem und dem TV-System,
einen minimalen Kopplungsverlust des Koexistenzsystems und einen effektiven Ausgangsleistungsaktivitätsfaktor
der übertragenden Antenne des kognitiven Radiosystems;
der Systemparameter des TV-Systems mindestens eines der Folgenden umfasst:
eine Verstärkung einer empfangenden Antenne des TV-Systems, eine Empfangsleistung
eines Ortes, an dem sich ein Empfänger des TV-Systems befindet, ein erwartetes Nutzsignal-zu-Überlagerungssignal
Leistungsverhältnis des Empfängers des TV-Systems, eine Entfernung zwischen dem Empfänger
des TV-Systems und einem Sender des kognitiven Radiosystems und einen Wegverlust zwischen
dem kognitiven Radiosystem und dem TV-System.
6. Verfahren nach einem der Ansprüche 1 bis 4,
dadurch gekennzeichnet, dass die tatsächliche Übertragungsleistung des kognitiven Radiosystems auf mindestens
eine der folgenden Weisen so gesteuert wird, dass sie weniger als die maximale Übertragungsleistung
ist:
Verstärkung von Filtern, Verstärkung von Spektrumisolationsgürteln und Verstärkung
eines Raumintervalls zwischen einem Empfänger und einem Sender.
7. Verfahren nach Anspruch 1,
dadurch gekennzeichnet, dass der Höchstwert
I der von dem kognitiven Radiosystem empfangenen Interferenzleistung durch folgende
Formel bestimmt wird:

wobei
PTX_TV auf eine Übertragungsleistung eines Senders des TV-Systems verweist, G auf eine Summe
einer Verstärkung einer übertragenden Antenne des TV-Systems und eine Verstärkung
einer empfangenden Antenne des kognitiven Radiosystems verweist,
ATV auf einen Aktivitätsfaktor verweist,
ACIRTV auf ein Leckverhältnis eines Nebenkanals verweist, d auf eine Entfernung zwischen
dem Sender des TV-Systems und einem Empfänger des kognitiven Radiosystems verweist
und PL(d) auf einen Wegverlust zwischen dem kognitiven Radiosystem und dem TV-System
verweist.
8. Verfahren nach Anspruch 1,
dadurch gekennzeichnet, dass, wenn geurteilt wird, dass der Höchstwert nicht weniger als die in dem kognitiven
Radiosystem erlaubte maximale Interferenzleistung ist, ein Außerbandleck des TV-Systems
auf mindestens eine der folgenden Weisen reduziert wird:
Verstärkung von Filtern, Verstärkung von Spektrumisolationsgürteln, Verstärkung eines
Raumintervalls zwischen einem Empfänger und einem Sender und einer Vorverzerrung.
9. Vorrichtung zur Leistungssteuerung eines kognitiven Radiosystems, umfassend:
ein Messmodul (62), konfiguriert zum Messen eines Systemparameters eines kognitiven
Radiosystems und eines Systemparameters eines TV-Systems, angeordnet in einem Nebenkanal
des kognitiven Radiosystems;
ein Bestimmungsmodul (64), konfiguriert zum Bestimmen einer maximalen Übertragungsleistung
des kognitiven Radiosystems gemäß dem Systemparameter des kognitiven Radiosystems
und dem Systemparameter des TV-Systems; und
ein Steuermodul (66), konfiguriert zum Steuern einer tatsächlichen Übertragungsleistung
des kognitiven Radiosystems, sodass diese weniger als die maximale Übertragungsleistung
ist;
wobei das Steuermodul (66) ferner konfiguriert ist, um, nach dem Steuern der tatsächlichen
Übertragungsleistung des kognitiven Radiosystems, sodass diese weniger als die maximale
Übertragungsleistung ist, einen Höchstwert einer von dem kognitiven Radiosystem empfangenen
Interferenzleistung zu bestimmen; zu beurteilen, ob der Höchstwert weniger als eine
in dem kognitiven Radiosystem erlaubte maximale Interferenzleistung ist; wenn geurteilt
wird, dass der Höchstwert weniger als die in dem kognitiven Radiosystem erlaubte maximale
Interferenzleistung ist, zu bestimmen, dass das kognitive Radiosystem und das TV-System
koexistieren.
10. Vorrichtung nach Anspruch 9,
dadurch gekennzeichnet, dass das Bestimmungsmodul (64) ferner konfiguriert ist, die maximale Übertragungsleistung
des kognitiven Radiosystems durch folgende Formel zu bestimmen:

wobei
PRX_TV auf eine Empfangsleistung eines Ortes, an dem sich ein Empfänger des TV-Systems befindet,
verweist,
RD/U auf ein erwartetes Nutzsignal-zu-Uberlagerungssignal Leistungsverhältnis des Empfängers
des TV-Systems verweist, G auf eine Summe einer Verstärkung einer übertragenden Antenne
des kognitiven Radiosystems und einer Verstärkung einer empfangenden Antenne des TV-Systems
verweist, ACIR auf ein Nebenkanal-Interferenzungsverhältnis eines Koexistenzsystems,
gebildet von dem kognitiven Radiosystem und dem TV-System verweist, MCL auf einen
minimalen Kopplungsverlust des Koexistenzsystems verweist, d auf eine Entfernung zwischen
dem Empfänger des TV-Systems und einem Sender des kognitiven Radiosystems verweist,
PL(d) auf einen Wegverlust zwischen dem kognitiven Radiosystem und dem TV-System verweist
und A auf einen tatsächlichen Ausgangsleistungsaktivitätsfaktor der übertragenden
Antenne des kognitiven Radiosystems verweist.
1. Procédé pour réguler la puissance d'un système radio cognitif, comprenant :
la mesure d'un paramètre système d'un système radio cognitif et d'un paramètre système
d'un système de télévision (TV) situé dans un canal adjacent du système radio cognitif
(S202) ;
la détermination d'une puissance d'émission maximum du système radio cognitif en fonction
du paramètre système du système radio cognitif et du paramètre système du système
de TV (S204) ; et
la régulation d'une puissance d'émission réelle du système radio cognitif de telle
sorte qu'elle soit inférieure à la puissance d'émission maximum (S206) ; dans lequel
:
après la régulation de la puissance d'émission réelle du système radio cognitif de
telle sorte qu'elle soit inférieure à la puissance d'émission maximum (S206), le procédé
comprend en outre :
la détermination d'une valeur maximum d'une puissance d'interférence reçue par le
système radio cognitif ;
l'appréciation de si oui ou non la valeur maximum est inférieure à une puissance d'interférence
maximum autorisée dans le système radio cognitif ;
s'il est apprécié que la valeur maximum est inférieure à la puissance d'interférence
maximum autorisée dans le système radio cognitif, la détermination du fait que le
système radio cognitif et le système de TV coexistent.
2. Procédé selon la revendication 1,
caractérisé en ce que, en fonction du paramètre système du système radio cognitif et du paramètre système
du système de TV, la puissance d'émission maximum P
TX du système radio cognitif est déterminée via la formule qui suit :

dans laquelle P
RX_TV se rapporte à une puissance de réception d'un site au niveau duquel un récepteur
du système de TV se trouve, R
D/U se rapporte à un rapport de puissances attendu signal utile sur signal d'interférence
du récepteur du système de TV, G se rapporte à une somme d'un gain d'une antenne d'émission
du système radio cognitif et d'un gain d'une antenne de réception du système de TV,
ACIR se rapporte à un rapport d'interférences de canaux adjacents d'un système à coexistence
formé par le système radio cognitif et par le système de TV, MCL se rapporte à une
perte de couplage minimum du système à coexistence, d se rapporte à une distance entre
le récepteur du système de TV et un émetteur du système radio cognitif, PL(d) se rapporte
à un affaiblissement de propagation entre le système radio cognitif et le système
de TV, et A se rapporte à un facteur d'activité de puissance de sortie efficace de
l'antenne d'émission du système radio cognitif.
3. Procédé selon la revendication 2,
caractérisé en ce que la puissance de réception P
RX_TV du site au niveau duquel le récepteur du système de TV se trouve est déterminée via
la formule qui suit :

dans laquelle P
RX_TV_L se rapporte à une puissance de réception de TV d'un canal adjacent gauche d'un espace
blanc de TV occupé par le système radio cognitif, et P
RX_TV_R se rapporte à une puissance de réception de TV d'un canal adjacent droit de l'espace
blanc de TV occupé par le système radio cognitif.
4. Procédé selon la revendication 3, caractérisé en ce que, lorsqu'il n'y a pas de signal du système de TV dans le canal adjacent droit, PRX_TV = PRX_TV_L ; lorsqu'il n'y a pas de signal du système de TV dans le canal adjacent gauche, PRX_TV = PRX_TV_R.
5. Procédé selon l'une quelconque des revendications 1 à 4,
caractérisé en ce que :
le paramètre système du système radio cognitif comprend au moins un élément pris parmi
:
un gain d'une antenne d'émission du système radio cognitif, un rapport d'interférences
de canaux adjacents d'un système à coexistence formé par le système radio cognitif
et par le système de TV, une perte de couplage minimum du système à coexistence, et
un facteur d'activité de puissance de sortie efficace de l'antenne d'émission du système
radio cognitif ;
le paramètre système du système de TV comprend au moins un élément pris parmi :
un gain d'une antenne de réception du système de TV, une puissance de réception d'un
site au niveau duquel un récepteur du système de TV se trouve, un rapport de puissances
attendu signal utile sur signal d'interférence du récepteur du système de TV, une
distance entre le récepteur du système de TV et un émetteur du système radio cognitif,
et un affaiblissement de propagation entre le système radio cognitif et le système
de TV.
6. Procédé selon l'une quelconque des revendications 1 à 4,
caractérisé en ce que la puissance d'émission réelle du système radio cognitif est régulée de manière à
être inférieure à la puissance d'émission maximum selon au moins l'une des façons
qui suivent :
une augmentation des filtres, une augmentation des zones d'isolement de spectre, et
une augmentation d'un intervalle spatial entre un récepteur et un émetteur.
7. Procédé selon la revendication 1,
caractérisé en ce que la valeur maximum I de la puissance d'interférence reçue par le système radio cognitif
est déterminée via la formule qui suit :

dans laquelle P
TX_TV se rapporte à une puissance d'émission d'un émetteur du système de TV, G se rapporte
à une somme d'un gain d'une antenne d'émission du système de TV et d'un gain d'une
antenne de réception du système radio cognitif, A
TV se rapporte à un facteur d'activité, ACIR
TV se rapporte à un rapport de fuites de canaux adjacents, d se rapporte à une distance
entre l'émetteur du système de TV et un récepteur du système radio cognitif, et PL(d)
se rapporte à un affaiblissement de propagation entre le système radio cognitif et
le système de TV.
8. Procédé selon la revendication 1,
caractérisé en ce que, s'il est apprécié que la valeur maximum n'est pas inférieure à la puissance d'interférence
maximum autorisée dans le système radio cognitif, une fuite hors bande du système
de TV est réduite selon au moins l'une des façons qui suivent :
une augmentation des filtres, une augmentation des zones d'isolement de spectre, une
augmentation d'un intervalle spatial entre un récepteur et un émetteur, et une pré-distorsion.
9. Dispositif pour réguler la puissance d'un système radio cognitif, comprenant :
un module de mesure (62), configuré de manière à mesurer un paramètre système d'un
système radio cognitif et un paramètre système d'un système de TV situé dans un canal
adjacent du système radio cognitif ;
un module de détermination (64), configuré de manière à déterminer une puissance d'émission
maximum du système radio cognitif en fonction du paramètre système du système radio
cognitif et du paramètre système du système de TV ; et
un module de régulation (66), configuré de manière à réguler une puissance d'émission
réelle du système radio cognitif de telle sorte qu'elle soit inférieure à la puissance
d'émission maximum ; dans lequel :
le module de régulation (66) est en outre configuré de manière à, après la régulation
de la puissance d'émission réelle du système radio cognitif de telle sorte qu'elle
soit inférieure à la puissance d'émission maximum, déterminer une valeur maximum d'une
puissance d'interférence reçue par le système radio cognitif ; de manière à apprécier
si oui ou non la valeur maximum est inférieure à une puissance d'interférence maximum
autorisée dans le système radio cognitif ; s'il est apprécié que la valeur maximum
est inférieure à la puissance d'interférence maximum autorisée dans le système radio
cognitif, de manière à déterminer que le système radio cognitif et le système de TV
coexistent.
10. Dispositif selon la revendication 9,
caractérisé en ce que le module de détermination (64) est en outre configuré de manière à déterminer la
puissance d'émission maximum P
TX du système radio cognitif via la formule qui suit :

dans laquelle P
RX_TV se rapporte à une puissance de réception d'un site au niveau duquel un récepteur
du système de TV se trouve, R
D/U se rapporte à un rapport de puissances attendu signal utile sur signal d'interférence
du récepteur du système de TV, G se rapporte à une somme d'un gain d'une antenne d'émission
du système radio cognitif et d'un gain d'une antenne de réception du système de TV,
ACIR se rapporte à un rapport d'interférences de canaux adjacents d'un système à coexistence
formé par le système radio cognitif et par le système de TV, MCL se rapporte à une
perte de couplage minimum du système à coexistence, d se rapporte à une distance entre
le récepteur du système de TV et un émetteur du système radio cognitif, PL(d) se rapporte
à un affaiblissement de propagation entre le système radio cognitif et le système
de TV, et A se rapporte à un facteur d'activité de puissance de sortie efficace de
l'antenne d'émission du système radio cognitif.